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Dynamics of Heterotrophic Bacterial Assemblages within Synechococcus Cultures

γ蛋白杆菌 生物 联合球菌 放线菌门 细胞吞噬 α蛋白细菌 异养 细菌 蓝藻 玫瑰杆菌 人口 微生物种群生物学 微生物学 生态学 植物 黄杆菌 假单胞菌 16S核糖体RNA 系统发育学 生物化学 克莱德 基因 社会学 人口学 遗传学
作者
Qiang Zheng,Yu Wang,Rui Xie,Andrew S. Lang,Yanting Liu,Jiayao Lu,Xiaodong Zhang,Jun Sun,Curtis A. Suttle,Nianzhi Jiao
出处
期刊:Applied and Environmental Microbiology [American Society for Microbiology]
卷期号:84 (3) 被引量:66
标识
DOI:10.1128/aem.01517-17
摘要

ABSTRACT Interactions between photoautotrophic and heterotrophic microorganisms are central to the marine microbial ecosystem. Lab cultures of one of the dominant marine photoautotrophs, Synechococcus , have historically been difficult to render axenic, presumably because these bacteria depend upon other organisms to grow under these conditions. These tight associations between Synechococcus and heterotrophic bacteria represent a good relevant system to study interspecies interactions. Ten individual Synechococcus strains, isolated from eutrophic and oligotrophic waters, were chosen for investigation. Four to six dominant associated heterotrophic bacteria were detected in the liquid cultures of each Synechococcus isolate, comprising members of the Cytophaga - Flavobacteria - Bacteroides (CFB) group (mainly from Flavobacteriales and Cytophagales ), Alphaproteobacteria (mainly from the Roseobacter clade), Gammaproteobacteria (mainly from the Alteromonadales and Pseudomonadales ), and Actinobacteria . The presence of the CFB group, Gammaproteobacteria , and Actinobacteria showed clear geographic patterns related to the isolation environments of the Synechococcus bacteria. An investigation of the population dynamics within a growing culture (XM-24) of one of the isolates, including an evaluation of the proportions of cells that were free-living versus aggregated/attached, revealed interesting patterns for different bacterial groups. In Synechococcus sp. strain XM-24 culture, flavobacteria, which was the most abundant group throughout the culture period, tended to be aggregated or attached to the Synechococcus cells, whereas the actinobacteria demonstrated a free-living lifestyle, and roseobacters displayed different patterns depending on the culture growth phase. Factors contributing to these succession patterns for the heterotrophs likely include interactions among the culture community members, their relative abilities to utilize different compounds produced by Synechococcus cells and changes in the compounds released as culture growth proceeds, and their responses to other changes in the environmental conditions throughout the culture period. IMPORTANCE Marine microbes exist within an interactive ecological network, and studying their interactions is an important part of understanding their roles in global biogeochemical cycling and the determinants of microbial diversity. In this study, the dynamic relationships between Synechococcus spp. and their associated heterotrophic bacteria were investigated. Synechococcus -associated heterotrophic bacteria had similar geographic distribution patterns as their “host” and displayed different lifestyles (free-living versus attached/aggregated) according to the Synechococcus culture growth phases. Combined organic carbon composition and bacterial lifestyle data indicated a potential for succession in carbon utilization patterns by the dominant associated heterotrophic bacteria. Comprehending the interactions between photoautotrophs and heterotrophs and the patterns of organic carbon excretion and utilization is critical to understanding their roles in oceanic biogeochemical cycling.
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